English

Measuring the net circular polarization of the stochastic gravitational wave background with interferometers

Cosmology and Nongalactic Astrophysics 2020-05-20 v1 General Relativity and Quantum Cosmology High Energy Physics - Phenomenology High Energy Physics - Theory

Abstract

Parity violating interactions in the early Universe can source a stochastic gravitational wave background (SGWB) with a net circular polarization. In this paper, we study possible ways to search for circular polarization of the SGWB with interferometers. Planar detectors are unable to measure the net circular polarization of an isotropic SGWB. We discuss the possibility of using the dipolar anisotropy kinematically induced by the motion of the solar system with respect to the cosmic reference frame to measure the net circular polarization of the SGWB with planar detectors. We apply this approach to LISA, re-assessing previous analyses by means of a more detailed computation and using the most recent instrument specifications, and to the Einstein Telescope (ET), estimating for the first time its sensitivity to circular polarization. We find that both LISA and ET, despite operating at different frequencies, could detect net circular polarization with a signal-to-noise ratio of order one in a SGWB with amplitude h2ΩGW1011h^2 \Omega_\text{GW} \simeq 10^{-11}. We also investigate the case of a network of ground based detectors. We present fully analytical, covariant formulas for the detector overlap functions in the presence of circular polarization. Our formulas do not rely on particular choices of reference frame, and can be applied to interferometers with arbitrary angles among their arms.

Keywords

Cite

@article{arxiv.1910.08052,
  title  = {Measuring the net circular polarization of the stochastic gravitational wave background with interferometers},
  author = {Valerie Domcke and Juan Garcia-Bellido and Marco Peloso and Mauro Pieroni and Angelo Ricciardone and Lorenzo Sorbo and Gianmassimo Tasinato},
  journal= {arXiv preprint arXiv:1910.08052},
  year   = {2020}
}

Comments

33 pages + appendices, 6 figures